Goulas Alexandros, Uylings Harry B M, Hilgetag Claus C
Department of Computational Neuroscience, University Medical Center Hamburg-Eppendorf, Martinistr. 52, 20246, Hamburg, Germany.
Max Planck Research Group Neuroanatomy and Connectivity, Max Planck Institute for Human Cognitive and Brain Sciences, Stephanstraße 1A, 04103, Leipzig, Germany.
Brain Struct Funct. 2017 Apr;222(3):1281-1295. doi: 10.1007/s00429-016-1277-y. Epub 2016 Aug 6.
Structural connectivity among cortical areas provides the substrate for information exchange in the cerebral cortex and is characterized by systematic patterns of presence or absence of connections. What principles govern this cortical wiring diagram? Here, we investigate the relation of physical distance and cytoarchitecture with the connectional architecture of the mouse cortex. Moreover, we examine the relation between patterns of ipsilateral and contralateral connections. Our analysis reveals a mirrored and attenuated organization of contralateral connections when compared with ipsilateral connections. Both physical distance and cytoarchitectonic similarity of cortical areas are related to the presence or absence of connections. Notably, our analysis demonstrates that the combination of these factors relates better to cortico-cortical connectivity than each factor in isolation and that the two factors relate differently to ipsilateral and contralateral connectivity. Physical distance is more tightly related to the presence or absence of ipsilateral connections, but its relevance greatly diminishes for contralateral connections, while the contribution of cytoarchitectonic similarity remains relatively stable. Our results, together with similar findings in the cat and macaque cortex, suggest that a common set of principles underlies the macroscale wiring of the mammalian cerebral cortex.
皮质区域之间的结构连接性为大脑皮质中的信息交流提供了基础,其特征在于连接存在或缺失的系统性模式。是什么原则支配着这个皮质布线图?在这里,我们研究了物理距离和细胞结构与小鼠皮质连接结构的关系。此外,我们还研究了同侧和对侧连接模式之间的关系。我们的分析表明,与同侧连接相比,对侧连接呈现出一种镜像且减弱的组织形式。皮质区域的物理距离和细胞结构相似性都与连接的存在或缺失有关。值得注意的是,我们的分析表明,这些因素的组合比单独的每个因素与皮质-皮质连接性的关系更紧密,并且这两个因素与同侧和对侧连接性的关系不同。物理距离与同侧连接的存在或缺失关系更紧密,但对于对侧连接,其相关性大大降低,而细胞结构相似性的贡献则相对稳定。我们的结果,连同在猫和猕猴皮质中的类似发现,表明一组共同的原则构成了哺乳动物大脑皮质宏观布线的基础。